1.0 TECHNICAL FIELD
[0001] The present invention relates to devices and systems for testing automobile safety
functions, features and technologies.
2.0 BACKGROUND
[0002] Many new vehicles are outfitted with automatic or driver-assistive steering systems,
such as Lane Keeping Systems (LKS) or automatic steering functions. Such systems assist
the driver in staying within a given roadway lane by, for example, exerting a low
level of torque to the vehicle's steering system or applying differential braking
to the wheels.
[0003] There currently exist robotic steering controllers for use in highly dynamic vehicle
evaluations, where high levels of steering torque, large steering angles and high
angular rates are required. These robotic steering controllers generally comprise
a direct-drive or geared motor mounted to a vehicle's steering wheel, and are equipped
with a load reaction mechanism to react the steering loads through rods, or other
linkage, attached to vehicle structure, windshield, etc. These systems generally have
large self-inertia, damping, and friction characteristics which affect the free response
characteristics of the vehicle's steering system while they are installed or connected
to the steering wheel. When evaluating LKS, the contribution of the robotic steering
controller's own dynamics can affect the performance of the LKS, which is undesirable.
[0004] A robotic steering apparatus is, for example, described in United States Patent Application
Publication
US 2008/0197293 A1, which discusses a vehicle direction correcting apparatus including an actuator detachably
connected to a steering wheel.
[0005] In order to use existing robotic steering controllers for these types of evaluations,
the undesirable effects of the robotic controller's own inertia, damping and friction
characteristics must be accepted or electronically compensated through the use of
high-fidelity torque sensors, high bandwidth controllers and inertia/damping/friction
compensation algorithms. Such systems tend to be fairly expensive and complex, and
often require careful tuning in order to minimize the effect of the robotic steering
controller on the vehicle's own steering system dynamics. In many cases, the effect
of the robotic steering controller cannot be completely eliminated through tuning
due to minute variations in the controller's own friction or damping characteristics
resulting from wear, temperature changes, or other factors, and the controller consequently
continues to exert residual torque on the vehicle's steering system, disturbing its
free response.
[0006] Therefore a need exists to measure the free response of the steering/vehicle system
without affecting its dynamics. Further a novel approach to a robotic steering controller
is needed to facilitate the evaluation of such systems in a precisely controlled manner.
[0007] It is an object of the invention to provide an apparatus and method for operating
an automobile steering wheel and testing automobile safety functions. This and other
objects are achieved by the features as claimed in claim 1 and 12. Advantageous further
embodiments are claimed in the dependent claims.
3.0 BRIEF DESCRIPTION OF THE DRAWINGS
[0008] The invention can be better understood with reference to the following figures. The
components within the figures are not necessarily to scale, emphasis instead being
placed on clearly illustrating example aspects of the invention. In the figures, like
reference numerals designate corresponding parts throughout the different views and/or
embodiments. Furthermore, various features of different disclosed embodiments can
be combined to form additional embodiments, which are part of this disclosure. It
will be understood that certain components and details may not appear in the figures
to assist in more clearly describing the invention.
FIG. 1 shows the steering robot attached to a steering wheel by means of an electromechanical
connector and an actuator arm.
FIG. 2 shows the steering robot turning the steering wheel in one direction.
FIG. 3 shows the steering robot turning the steering wheel in the opposite direction
of FIG. 2.
FIG. 4A shows the steering robot detached from a steering wheel.
FIG. 4B illustrates the detachment forces acting on the steering robot.
FIG. 5A illustrates a first embodiment of an electromechanical connector and steering
wheel bracket.
FIG. 5B illustrates a second embodiment of an electromechanical connector and steering
wheel bracket.
FIG. 5C illustrates a third embodiment of an electromechanical connector and steering
wheel bracket.
FIG. 5D illustrates a fourth embodiment of an electromechanical connector.
FIG. 6 is a diagram of the steering processor connected to the actuator and electromechanical
connector and other processors.
FIG. 7 is a line drawing from a photograph of the steering robot connected to a steering
wheel by means of an electromechanical connector.
FIG. 8 is a line drawing from a photograph of the steering robot connected to a steering
wheel by means of an electromechanical connector.
FIG. 9 is a line drawing from a photograph of the steering robot just after it has
detached from the steering wheel.
FIG. 10 is a line drawing from a photograph of the steering robot taken a fraction
of a second after Fig. 9, detached from the steering wheel.
FIG.11 is a line drawing from a photograph taken from the side of the steering wheel
showing the final position of the actuator and actuator arm relative to the steering
wheel after detachment.
FIG. 12A shows the steering robot attached to a steering wheel by means of an electromechanical
connector and an actuator shaft.
FIG. 12B is another perspective of the steering robot of FIG. 12A.
FIG. 12C illustrates an electromechanical connector and steering wheel bracket for
the actuator shaft embodiment.
FIG. 12D illustrates an electromechanical connector and steering wheel bracket for
the actuator shaft embodiment.
FIG. 13 is method of evaluating the free response of a test automobile's safety functions
using the steering robot.
4.0 DETAILED DESCRIPTION
[0009] In the following description, numerous specific details are set forth in order to
provide a thorough understanding of the present invention. Particular example embodiments
of the present invention may be implemented without some or all of these specific
details. In other instances, process operations well known to persons of skill in
the art have not been described in detail in order not to obscure unnecessarily the
present invention. Various techniques and mechanisms of the present invention will
sometimes be described in singular form for clarity. However, it should be noted that
some embodiments include multiple iterations of a technique or multiple mechanisms
unless noted otherwise. Similarly, various steps of the methods shown and described
herein are not necessarily performed in the order indicated, or performed at all in
certain embodiments. Accordingly, some implementations of the methods discussed herein
may include more or fewer steps than those shown or described. Further, the techniques
and mechanisms of the present invention will sometimes describe a connection, relationship
or communication between two or more entities. It should be noted that a connection
or relationship between entities does not necessarily mean a direct, unimpeded connection,
as a variety of other entities or processes may reside or occur between any two entities.
Consequently, an indicated connection does not necessarily mean a direct, unimpeded
connection unless otherwise noted.
[0010] The following list of example features corresponds with FIGS. 1-13 and is provided
for ease of reference, where like reference numerals designate corresponding features
throughout the specification and figures:
Steering Robot 5
Steering Wheel 10
Steering Wheel Bracket 15
Steering Wheel Bracket (first embodiment) 15A
Steering Wheel Bracket (second embodiment) 15B
Steering Wheel Bracket (third embodiment) 15C
Steering Wheel Bracket (shaft coupler design first embodiment) 15D
Steering Wheel Bracket (shaft coupler design second embodiment) 15E
Steering Wheel Bracket Connector Structure (first embodiment) 15AA
Steering Wheel Bracket Connector Structure (second embodiment) 15BB
Steering Wheel Bracket Connector Structure (third embodiment) 15CC
Steering Wheel Bracket Connector Structure (shaft coupler design first embodiment)
15DD
Steering Wheel Bracket Connector Structure (shaft coupler design second embodiment)
15DD
Actuator 20
Actuator Arm (connection structure) 25A
Actuator Shaft (connection structure)25B
Compliant Coupling 27
Electromechanical Connector 30
Electromechanical Connector (first embodiment, actuator connection structure side)
30A
Electromechanical Connector (second embodiment, actuator connection structure side)
30B
Electromechanical Connector (third embodiment, actuator connection structure side)
30C
Electromechanical Connector (fourth embodiment) 30D
Electromechanical Connector (shaft coupler design first embodiment) 30E
Electromechanical Connector (shaft coupler design second embodiment) 30F
Actuator Bracket 35
Bracing Rod 40
Bracing Rod Mount 45
Robot Steering Rotation 50
Opposite Robot Steering Rotation 55
Actuator Detachment 60
Actuator Detachment Force 65
Gravity detachment Force 65A
Rotational Spring Biased Force 65B
Translational Spring Biased Force 65C
Electro/mechanical Connector Actuation (first embodiment) 70A
Electro/mechanical Connector Actuation (second embodiment) 70B
Electro/mechanical Connector Actuation (third embodiment) 70C
Electro/mechanical Connector Actuation (fourth embodiment) 70D
Electro/mechanical Connector Actuation (fifth embodiment) 70E
Electro/mechanical Connector Actuation (sixth embodiment) 70F
Steering Processor 75
Automobile Processor/Sensors 80
Remote Processor/Controller 85
Electro/Mechanical Connector Control Line 90
Actuator Control Line 95
Automobile Mount 100
Rotational Plane of Actuator 105
Rotational Plane of Steering Wheel 110
Method of evaluating the free response of a test automobile's safety functions 200
Steps to the method of 200 205-230
[0011] In order to minimize or eliminate the steering robot's effect on the free response
dynamics of the steering/vehicle system, it is necessary to decouple the steering
robot from the steering wheel as completely as possible. The present innovation achieves
this through the use of an electronic or mechanical (electromechanical) connector
between the robotic control actuator and the steering wheel. This design provides
precise on-center and small angle path-following steering control as well as precise
open-loop steering inputs. Further, the quick disconnect of the actuator from the
steering wheel when prescribed conditions are met (e.g., at a given point along a
path, at a given yaw rate, path curvature, etc.), minimizes the inertial and other
effects of the actuator and its mechanical attachments on the free response of the
steering/vehicle system.
[0012] The system described here may use a commercial grade angular motion electromechanical
servo actuator. As should be recognized, the actuator may be of any type that creates
rotational or translational movement that can be transferred to the steering wheel.
Non-limiting types of actuators include: hydraulic, pneumatic, mechanical, electrical,
thermal, magnetic, and vacuum actuators (these actuators may be combinations of the
foregoing, as well; for example, a vacuum-assisted mechanical or electro-hydraulic).
In a preferred embodiment, the electromechanical servo actuator is mounted to the
automobile, for example, by a rod that is connected to the windshield by means of
a suction cup. An electromechanical connector is attached to the end of the servo
arm and may attach to a small steering wheel bracket, which is secured to the vehicle's
steering wheel rim via light-weight tie-wraps. In another embodiment, the actuator
can be connected to the steering wheel (or steering wheel nut) through the use of
a shaft in torsion. The connection structure is intended to transfer the torque from
the actuator to the steering wheel.
[0013] Referring now to FIGS. 1 through 4, a steering robot 5 for operating a steering wheel
10 of a test automobile is shown. The robot 5 includes an actuator 20 (illustrated
as a servo) mounted to the automobile. The actuator may be housed in a bracket 35
that has a bracing rod 40 extending therefrom. At the end of the bracing rod is a
bracing rod mount 45 that connects to an automobile mount 100, shown in FIGS. 7-11.
A non-limiting example of the automobile mount is a suction cup that may connect to
the test automobile's windshield.
[0014] A connection structure - i.e., actuator arm 25A - is connected to the actuator 20
which has an electromechanical connector 30 that temporarily connects the actuator
arm 25A to the steering wheel 10. Optionally, the steering wheel 10 may have a lightweight
steering wheel bracket 15 that is the connection point to the electromechanical connector
30. The actuator arm 25A is depicted as a longitudinal rod, but it need not be so;
rather the actuator arm 25A may be used to amplify the rotational movement of the
actuator 20 by connecting the to the rotational axis of the actuator 20 at one location
on the actuator arm 25A and connecting to the electromechanical connector 30 at another
location on the actuator arm 25A. Therefore, the actuator arm 25A may be shaped more
like a plate if necessary. Further the actuator arm 25A need not be used; rather the
actuator 20 may be connected to the steering wheel through other types of connection
structures such a shaft, discussed in more detail below with respect to FIGS. 12A
through 12D.
[0015] A steering processor 75 is connected to the actuator 20 and electromechanical connector
30 and can control them both. By actuating the actuator 20, the processor 75 can operate
the steering wheel 10 when the actuator 20 is connected to the steering wheel 10 by
way of the electromechanical connector 30. This is shown by the robotic steering rotation
50 in FIG. 2 and the opposite robotic steering rotation 55 in FIG. 3. And by actuating
the electromechanical connector 30, the processor 75 can disconnect 60 the actuator
20 from the steering wheel 10 as shown in FIG. 4A. The processor may perform the actuation
of the actuator 20 and then the actuation of the electromechanical connector 30 while
the test automobile is being driven. FIGS. 7 through 11 illustrate the installation
of the steering robot 5 on a test automobile. Further FIGS. 8, 9 and 10, show the
decoupling of the electromechanical connector 30 from the steering wheel 10, each
of these figures are illustrated fractions of a second apart from each other.
[0016] A compliant coupling 27 between the end of the actuator arm 25A and the attachment
to the steering wheel 10 is optional. Some LKS systems determine driver attentiveness/alertness
by monitoring steering wheel torque and angular variations. In some cases, a rigid
coupling between the actuator arm 25A and the steering wheel 10 can be interpreted
as an attentive driver, which may cause the LKS to suppress certain features and functions,
including steering intervention, and adversely affect the evaluation of the LKS. A
compliant coupling 27 can be interpreted as a less attentive driver, such that the
LKS will not suppress steering interventions. The compliant coupling 27 may further
include an adjustable spring rate and preload, such that the compliance of the coupling
can be tailored to suit the requirements of the evaluation.
[0017] It is preferred that upon actuation and disconnection of the electromechanical connector
30, that the actuator 20, including the actuator arm 25A, move away from the steering
wheel 10 so as to prevent any interference with the steering wheel 10. To assist with
this movement, the robot 5 and the actuator 20 may experience an actuator detachment
force 65, but the connection of the actuator 20 to the steering wheel 10 by way of
the electromechanical connector 30 is sufficient to overcome the force. Actuating
the electromechanical connector 30 causes the actuator detachment force 65 to move
the actuator 20 away from the steering wheel 60 as shown in FIG. 4A. The detachment
force may be gravity 65A, a rotational spring bias 65B, a translational spring bias
65C, or combinations thereof as shown in FIG. 4B. FIG. 11 also illustrates the actuator
detachment 60 from the steering wheel bracket 15, which is caused by the actuator
detachment force 65.
[0018] Because the steering robot 5 and has mass, it also has self-inertia. Its self-inertia
provides inertial loading when it is connected to the steering wheel. The actuator
20 also has internal resistance to rotation, and this is experienced in the form of
a drag force when it is connected to the steering wheel. These happen even when the
steering robot 5 is turned off or deactivated. Because the test automobile's safety
features attempt to direct the car in a safe direction, but can be overcome by a driver's
slight torque on the steering wheel, this inertia and drag can skew the evaluation
of the test automobiles safety features. Ideally, the steering wheel should have as
little external inertia and drag as possible to have a useful and unbiased evaluation.
When the currently steering robot 5 actuates the electromechanical connector 30, the
steering wheel 10 is decoupled from the external inertia and drag, allowing for the
more accurate evaluation.
[0019] Turning now to FIGS. 5A through 5D, several electromechanical connectors are disclosed.
FIG. 5A illustrates an electromechanical connector that is an electromagnet 30A and
attracted to a steering wheel bracket connection structure -i.e. a piece of metal
15AA - that is part of the steering wheel bracket 15A. Actuating the electromechanical
connector 30A comprises deactivation 70A of the electromagnet 30A such that the electromagnet
30A is not attracted to the piece of metal 15AA causing actuator arm detachment 60.
FIGS. 5B and 5C illustrate electromechanical connectors that include a pin (30B, 30C)
inserted into steering wheel bracket connection structures - i.e., slots (15BB, 15CC)
- that are a part of the steering wheel brackets (15B, 15C). Actuating the electromechanical
connectors (30B, 30C) removes the pin (70B, 70C) from the slots (15BB, 15CC). Finally
FIG. 5D illustrates an actuator arm 25A with an electromechanical connector that is
a pincer 30D that can be actuated 70D to open and release from the steering wheel
10.
[0020] In the embodiment just described, the actuator 20 is situated to the side of the
steering wheel 10, such that its rotational axis is parallel to, but not coincident
with, the rotational axis of the steering wheel 10. In this case, the electromechanical
connector 30 may be situated on the forward side of the steering wheel 10 (i.e., the
side opposite the driver) such that it can fall away from the steering wheel 10 under
its own weight upon disconnect. In this embodiment, the rotational plane of the actuator
is not necessarily equal to the rotational plane of the steering wheel. This is shown
in FIG. 11 where the rotational plane of the actuator when connected to the steering
wheel 10 is shown as line 105, and the rotational plane of the steering wheel 10 is
shown as line 110. Thus, trigonometric compensation must be applied to achieve the
desired steering wheel angle, based upon the geometry of the particular installation.
[0021] In another embodiment, the actuator 20 is situated over the steering wheel 10, such
that its rotational axis is coincident with the rotational axis of the steering wheel.
In this case, the electromechanical connector 30 is situated on the rear side of the
steering wheel 10 (i.e., the side nearest the driver). In this embodiment, it may
be necessary to provide some means of biasing the actuator arm 25A away from the steering
wheel 10 such that when the actuator 20 is disconnected from the steering wheel 10,
it is moved slightly upward and away from the steering wheel 10. The structures disclosed
in FIG. 4B may be used to accomplish this. In this embodiment, the actuator angle
is equal to the steering wheel angle, and no additional angular compensation may be
necessary.
[0022] FIG. 6 illustrates a schematic of the processor control of the actuator 20 and the
electromechanical connector 30. The steering processor 75 is connected to the actuator
20 via control line 95 and to the electromechanical connector via control line 90.
While these lines may be hardwired, they also may be wireless. The test automobile
may also have an automobile processor 80 connected to automobile sensors. The steering
processor 75 may be connected to the automobile processor 80. Finally, the operation
of the steering robot may be accomplished either fully or partially by a remote control
85 connected to the steering processor 75 through a wireless signal. The remote control
may be external to the test automobile.
[0023] FIGS. 12A and 12B illustrate the use of an actuator shaft 25B as the connection structure.
The actuator 20 is connected to an actuator shaft 25B that has the electromechanical
connector 30E that engages a steering wheel bracket (shaft coupler) 15D connected
to the steering wheel 10. The electromechanical connector 30E and the steering wheel
bracket (shaft coupler) 15D may have complementary teeth structures to allow for high
torque of the actuator 20 without the connection between the actuator 20 and the steering
wheel 10 experiencing slippage. The electromechanical connector 30E may be an electromagnet
that maintains the actuator shaft in connection with the steering wheel bracket (shaft
coupler) 15D.
[0024] FIGS. 12C and 12D illustrate electromechanical connectors for the actuator shaft
25B. FIG. 12C illustrates an electromechanical connector that is an electromagnet
30E attracted to a steering wheel bracket connection structure -i.e. a piece of metal
15DD - that is part of the steering wheel bracket (shaft coupler) 15D. Actuating the
electromechanical connector 30E comprises deactivation 70E of the electromagnet 30E
such that the electromagnet 30E is not attracted to the piece of metal 15DD causing
actuator shaft detachment 60. FIG. 12D illustrates electromechanical connector that
includes a pin 3 OF inserted into steering wheel bracket connection structures slot
15EE that is a part of the steering wheel bracket 15E. Actuating the electromechanical
connector 30F removes the pin 70F from the slot 15EE.
[0025] FIG. 13 is illustrates a method 200 of evaluating the free response of a test automobile's
safety functions using the steering robot. In step 205, a steering robot is connected
to a steering wheel of the test automobile, the robot having its own inertia such
that the inertia is coupled to the steering wheel. The test automobile is driven (step
210) and while driven the robot is actuated to operate the steering wheel at step
215. This actuation may be sufficient to direct the test automobile out of its current
driving lane. Also while driving, the robot decouples from the steering wheel thereby
decoupling its own inertia from the steering wheel in step 220. Now the results of
the free response of a test automobile's safety functions may be evaluated at step
225. Optionally, the operation of the steering robot could be performed remotely (step
230). The robot used in method 200 may be the steering robot 5 detailed above. The
test automobile's safety functions may include, but are not limited to, a lane keeping
system, an autonomous driving system and a semi-autonomous driving system.
1. A steering robot (5) for operating a steering wheel (10) of a test automobile, the
robot (5) comprising:
an actuator (20) mounted to the automobile;
an electromechanical connector (30, 30A, 30B, 30C, 30D, 30E, 30F) that detachably
connects the actuator (20) to the steering wheel (10); and
a steering processor (75) connected to the actuator (20) and electromechanical connector
(30, 30A, 30B, 30C, 30D, 30E, 30F), the steering processor (75) adapted to perform
the step of:
(1) actuating the actuator (215), thereby operating the steering wheel when the actuator
is connected to the steering wheel by way of the electromechanical connector; characterized in that the steering processor (75) is adapted to perform the step of:
(2) actuating the electromechanical connector (220), thereby disconnecting the actuator
from the steering wheel.
2. The steering robot of claim 1, further comprising a connection structure (25) that
transfers a torque from the actuator (20) to the steering wheel (10), the connection
structure (25) is selected from a group consisting of: an actuator arm, a shaft, and
a plate.
3. The steering robot of claim 1, wherein the electromechanical connector (30A) comprises
an electromagnet attracted to a piece of metal.
4. The steering robot of claim 1, wherein the electromechanical connector (30B, 30C)
comprises a pin inserted into a slot.
5. The steering robot of claim 1, wherein the actuator (20) experiences an actuator detachment
force (65), and wherein the connection of the actuator (20) to the steering wheel
(10) is sufficient to overcome the force and wherein the actuation of the electromechanical
connector causes the actuator detachment force to move the electromechanical connector
away from the steering wheel.
6. The steering robot of claim 5, wherein the detachment force (65) is selected from
the group consisting of: gravity (65A), rotational spring bias (65B), translational
spring bias (65C), and combinations thereof.
7. The steering robot of claim 1, wherein the test automobile comprises an automobile
processor (80) connected to automobile sensors, wherein the steering processor (75)
is connected to the automobile processor (80).
8. The steering robot of claim 1, further comprising a remote control (85) connected
to the steering processor (75) through a wireless signal.
9. The steering robot of claim 1, wherein the robot (5) has self-inertia and when the
robot (5) is connected to the steering wheel (10), the steering wheel (10) experiences
the robot's self-inertia and wherein actuating the electromechanical connector (30,
30A, 30B, 30C, 30D, 30E, 30F) decouples the robot's self-inertia from the steering
wheel (10).
10. The steering robot of claim 1, wherein the processor (75) performs step (1) and then
step (2) while the test automobile is moving.
11. The steering robot of claim 1, wherein the actuator (20) is selected from a type consisting
of: hydraulic, pneumatic, mechanical, electrical, thermal, magnetic, vacuum, and combinations
thereof.
12. A method (200) for testing a test automobiles safety functions, the method (200) comprising
the steps of:
a. Providing (205) a steering robot (5) connected to a steering wheel (10) of the
test automobile, the robot (5) comprising an inertia, the inertia is coupled to the
steering wheel (10);
b. driving the test automobile (210);
c. while driving, actuating the robot to operate the steering wheel (215);
characterized by the steps of:
d. while driving, decoupling (220) the robot (5) from the steering wheel (10) thereby
decoupling the inertia from the steering wheel (10); and
e. evaluating the automobile safety functions (225).
13. The method (200) of claim 12, wherein:
the robot comprising an actuator (20) mounted to the automobile, and an electromechanical
connector (30, 30A, 30B, 30C, 30D, 30E, 30F) that detachably connects the actuator
(20) to the steering wheel (10);
step (c) comprising actuating the actuator (20) and thereby operating the steering
wheel (10); and
step (d) comprising actuating the electromechanical connector (30, 30A, 30B, 30C,
30D, 30E, 30F) and thereby disconnecting the actuator (20) from the steering wheel
(10).
14. The method (200) of claim 12, wherein the automobile safety function is selected from
a group consisting of: a lane keeping system, an autonomous driving system or a semi-autonomous
driving system.
15. The method (200) of claim 12, wherein steps (c), and (d) are controlled by a processor
(75, 85).
1. Ein Lenkroboter (5) zum Bedienen eines Lenkrads (10) eines Testkraftfahrzeugs, wobei
der Lenkroboter (5) versehen ist mit:
einem Aktuator (20), welcher in dem Testkraftfahrzeug installiert ist;
einem elektromechanischen Verbinder (30, 30A, 30B, 30C, 30D, 30E, 30F), welcher den
Aktuator (20) mit dem Lenkrad (10) lösbar verbindet; und
einem Lenkungs-Datenprozessor (75), welcher mit dem Aktuator (20) und dem elektromechanischen
Verbinder (30, 30A, 30B, 30C, 30D, 30E, 30F) verbunden ist, wobei der Lenkungs-Datenprozessor
(75) dazu konfiguriert ist, den folgenden Schritt auszuführen:
(1) Betätigen des Aktuators (215), um so das Lenkrad zu betätigen, während der Aktuator
mit dem Lenkrad mittels des elektromechanischen Verbinders verbunden ist;
dadurch gekennzeichnet, dass der Lenkungs-Datenprozessor (75) dazu konfiguriert ist, den folgenden Schritt auszuführen:
(2) Betätigen des elektromechanischen Verbinders (220), wodurch der Aktuator von dem
Lenkrad getrennt wird.
2. Der Lenkroboter nach Anspruch 1, weiter versehen mit einem Verbindungsmechanismus
(25), welcher ein Drehmoment von dem Aktuator auf das Lenkrad (10) überträgt, wobei
der Verbindungsmechanismus (25) aus den folgenden Mechanismen ausgewählt ist: einem
Aktuatorarm, einer Stange, und einer Platte.
3. Der Lenkroboter nach Anspruch 1, wobei der elektromechanische Verbinder (30A) einen
Elektromagnet aufweist, der eine Anziehungskraft auf ein Metallelement ausübt.
4. Der Lenkroboter nach Anspruch 1, wobei der elektromechanische Verbinder (30B, 30C)
einen in einen Schlitz eingesetzten Stift aufweist.
5. Der Lenkroboter nach Anspruch 1, wobei der Aktuator (20) eine Aktuator-Trennkraft
(65) erfährt, und wobei die Verbindung des Aktuators (20) mit dem Lenkrad (10) ausreichend
ist, um diese Kraft zu überwinden, und wobei die Betätigung des elektromechanischen
Verbinders die Aktuator-Trennkraft hervorruft, um den elektromechanische Verbinder
von dem Lenkrad weg zu bewegen.
6. Der Lenkroboter nach Anspruch 5, wobei die Aktuator-Trennkraft (65) aus den folgenden
Kräften ausgewählt ist: Schwerkraft (65A), Torsionsfederkraft (65B), und Zug- oder
Druckfederkraft (65C), oder Kombinationen davon.
7. Der Lenkroboter nach Anspruch 1, wobei das Testkraftfahrzeug einen Kraftfahrzeug-Prozessor
(80) aufweist, welcher mit Sensoren des Kraftfahrzeugs verbunden ist, wobei der Lenkungs-Datenprozessor
(75) mit dem Kraftfahrzeug-Prozessor (80) verbunden ist.
8. Der Lenkroboter nach Anspruch 1, weiter versehen mit einer Fernbedienung (85), welche
mittels eines drahtlosen Signals mit dem Lenkungs-Datenprozessor (75) verbunden ist.
9. Der Lenkroboter nach Anspruch 1, wobei der Lenkroboter (5) einen Eigenanteil an den
Trägheitskräften beisteuert, wenn der Lenkroboter (5) mit dem Lenkrad (10) verbunden
ist und diese Trägheitskräfte so auf das Lenkrad (10) überträgt, und wobei durch Betätigen
des elektromechanischen Verbinders (30, 30A, 30B, 30C, 30D, 30E, 30F) die von dem
Lenkroboter erzeugten Trägheitskräfte von dem Lenkrad (10) entkoppelt werden.
10. Der Lenkroboter nach Anspruch 1, wobei der Lenkungs-Datenprozessor (75) zunächst Schritt
(1) und dann den Schritt (2) ausübt, während sich das Testkraftfahrzeug in Bewegung
befindet.
11. Der Lenkroboter nach Anspruch 1, wobei der Aktuator (20) aus den folgenden Arten von
Aktuatoren ausgewählt ist: hydraulisch, pneumatische, mechanisch, elektrisch, thermisch,
magnetisch, Vakuum, oder Kombinationen davon.
12. Ein Verfahren (200) zum Testen der Sicherheitsfunktionen eines Testkraftfahrzeugs,
wobei das Verfahren (200) die folgenden Schritte aufweist:
a. Bereitstellen (205) eines Lenkroboters (5), welcher mit einem Lenkrad (10) des
Testkraftfahrzeugs verbunden ist, wobei der Lenkroboter (5) eine Trägheitskraft aufweist,
welche auf das Lenkrad (10) übertragen wird;
b. Fahren des Testkraftfahrzeugs (210);
c. während des Fahrvorgangs, Betätigen des Lenkroboters, um das Lenkrad zu betätigen
(215);
gekennzeichnet durch die Schritte von:
d. während des Fahrvorgangs, Entkoppeln (220) des Lenkroboters (5) von dem Lenkrad
(10), wodurch die Trägheitskraft von dem Lenkrad (10) entkoppelt wird; und
e. Untersuchen der Sicherheitsfunktionen (225) des Kraftfahrzeugs.
13. Das Verfahren (200) nach Anspruch 12, wobei:
der Roboter einen in dem Kraftfahrzeug installierten Aktuator (20) aufweist, und einen
elektromechanischen Verbinder (30, 30A, 30B, 30C, 30D, 30E, 30F) aufweist, welcher
den Aktuator (20) lösbar mit dem Lenkrad (10) verbindet;
der Schritt (c) das Betätigen eines Aktuators (20) beinhaltet, wodurch das Lenkrad
(10) betätigt wird; und
der Schritt (d) das Betätigen eines elektromechanischen Verbinders (30, 30A, 30B,
30C, 30D, 30E, 30F) beinhaltet, wodurch der Aktuator (20) von dem Lenkrad (10) getrennt
wird.
14. Das Verfahren (200) nach Anspruch 12, wobei die Sicherheitsfunktion des Kraftfahrzeugs
aus den folgenden Sicherheitsfunktionen ausgewählt ist: Spurhaltesystem, autonomes
Fahrsystem, oder halbautonomes Fahrsystem.
15. Das Verfahren (200) nach Anspruch 12, wobei die Schritte (c) und (d) von einem Datenprozessor
(75, 85) gesteuert werden.
1. Robot de direction (5) permettant de faire fonctionner un volant de direction (10)
d'une automobile d'essai, le robot (5) comprenant :
un actionneur (20) monté sur l'automobile ;
un connecteur électromécanique (30, 30A, 30B, 30C, 30D, 30E, 30F) qui connecte de
manière amovible l'actionneur (20) au volant de direction (10) ; et
un processeur de direction (75) connecté à l'actionneur (20) et au connecteur électromécanique
(30, 30A, 30B, 30C, 30D, 30E, 30F), le processeur de direction (75) étant adapté pour
effectuer l'étape consistant à :
(1) actionner l'actionneur (215), en faisant ainsi fonctionner le volant de direction
lorsque l'actionneur est connecté au volant de direction au moyen du connecteur électromécanique
; caractérisé en ce que le processeur de direction (75) est adapté pour effectuer l'étape consistant à :
(2) actionner le connecteur électromécanique (220), en déconnectant ainsi l'actionneur
à partir du volant de direction.
2. Robot de direction selon la revendication 1, comprenant en outre une structure de
connexion (25) qui transfère un couple de l'actionneur (20) au volant de direction
(10), la structure de connexion (25) étant sélectionnée dans un groupe constitué de
: un bras d'actionneur, un arbre et une plaque.
3. Robot de direction selon la revendication 1, dans lequel le connecteur électromécanique
(30A) comprend un électroaimant attiré vers une pièce de métal.
4. Robot de direction selon la revendication 1, dans lequel le connecteur électromécanique
(30B, 30C) comprend une broche insérée dans une fente.
5. Robot de direction selon la revendication 1, dans lequel l'actionneur (20) subit une
force de détachement d'actionneur (65), et dans lequel la connexion de l'actionneur
(20) au volant de direction (10) est suffisante pour surmonter la force, et dans lequel
l'actionnement du connecteur électromécanique amène la force de détachement d'actionneur
à éloigner le connecteur électromécanique du volant de direction.
6. Robot de direction selon la revendication 5, dans lequel la force de détachement (65)
est sélectionnée dans le groupe constitué de : gravité (65A), sollicitation de ressort
de rotation (65B), sollicitation de ressort de translation (65C), et des combinaisons
de celles-ci.
7. Robot de direction selon la revendication 1, dans lequel l'automobile d'essai comprend
un processeur d'automobile (80) connecté à des capteurs d'automobile, dans lequel
le processeur de direction (75) est connecté au processeur d'automobile (80).
8. Robot de direction selon la revendication 1, comprenant en outre une commande à distance
(85) connectée au processeur de direction (75) via un signal sans fil.
9. Robot de direction selon la revendication 1, dans lequel le robot (5) présente une
auto-inertie et lorsque le robot (5) est connecté au volant de direction (10), le
volant de direction (10) subit l'auto-inertie du robot et dans lequel l'actionnement
du connecteur électromécanique (30, 30A, 30B, 30C, 30D, 30E, 30F) désaccouple l'auto-inertie
du robot à partir du volant de direction (10).
10. Robot de direction selon la revendication 1, dans lequel le processeur (75) exécute
l'étape (1) puis l'étape (2) pendant que l'automobile d'essai se déplace.
11. Robot de direction selon la revendication 1, dans lequel l'actionneur (20) est sélectionné
dans un type consistant en : hydraulique, pneumatique, mécanique, électrique, thermique,
magnétique, sous vide, et des combinaisons de ceux-ci.
12. Procédé (200) pour essayer des fonctions de sécurité d'automobile d'essai, le procédé
(200) comprenant les étapes consistant à :
a. fournir (205) un robot de direction (5) connecté à un volant de direction (10)
de l'automobile d'essai, le robot (5) présentant une inertie, l'inertie étant couplée
au volant de direction (10) ;
b. conduire l'automobile d'essai (210) ;
c. pendant la conduite, actionner le robot pour faire fonctionner le volant de direction
(215) ; caractérisé par les étapes consistant à :
d. lors de la conduite, désaccoupler (220) le robot (5) à partir du volant de direction
(10), en désaccouplant ainsi l'inertie à partir du volant de direction (10) ; et
e. évaluer les fonctions de sécurité d'automobile (225) .
13. Procédé (200) selon la revendication 12, dans lequel :
le robot comprend un actionneur (20) monté sur l'automobile, et un connecteur électromécanique
(30, 30A, 30B, 30C, 30D, 30E, 30F) qui connecte de manière amovible l'actionneur (20)
au volant de direction (10) ;
l'étape (c) comprend un actionnement de l'actionneur (20) et ainsi un fonctionnement
du volant de direction (10) ; et
l'étape (d) consiste à actionner le connecteur électromécanique (30, 30A, 30B, 30C,
30D, 30E, 30F) et à déconnecter ainsi l'actionneur (20) à partir du volant (10).
14. Procédé (200) selon la revendication 12, dans lequel la fonction de sécurité d'automobile
est sélectionnée dans un groupe consistant en : un système de maintien de voie, un
système de conduite autonome ou un système de conduite semi-autonome.
15. Procédé (200) selon la revendication 12, dans lequel les étapes (c) et (d) sont commandées
par un processeur (75, 85).